EP3370058A1 - Planar waveguide device with nano-sized filter - Google Patents
Planar waveguide device with nano-sized filter Download PDFInfo
- Publication number
- EP3370058A1 EP3370058A1 EP17158711.6A EP17158711A EP3370058A1 EP 3370058 A1 EP3370058 A1 EP 3370058A1 EP 17158711 A EP17158711 A EP 17158711A EP 3370058 A1 EP3370058 A1 EP 3370058A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- pwd
- planar waveguide
- waveguide device
- coupling
- fluid
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
Links
Images
Classifications
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N21/00—Investigating or analysing materials by the use of optical means, i.e. using sub-millimetre waves, infrared, visible or ultraviolet light
- G01N21/17—Systems in which incident light is modified in accordance with the properties of the material investigated
- G01N21/41—Refractivity; Phase-affecting properties, e.g. optical path length
- G01N21/4133—Refractometers, e.g. differential
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B6/00—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
- G02B6/24—Coupling light guides
- G02B6/42—Coupling light guides with opto-electronic elements
- G02B6/4201—Packages, e.g. shape, construction, internal or external details
- G02B6/4287—Optical modules with tapping or launching means through the surface of the waveguide
- G02B6/4291—Optical modules with tapping or launching means through the surface of the waveguide by accessing the evanescent field of the light guide
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N21/00—Investigating or analysing materials by the use of optical means, i.e. using sub-millimetre waves, infrared, visible or ultraviolet light
- G01N21/17—Systems in which incident light is modified in accordance with the properties of the material investigated
- G01N21/41—Refractivity; Phase-affecting properties, e.g. optical path length
- G01N21/4133—Refractometers, e.g. differential
- G01N2021/4153—Measuring the deflection of light in refractometers
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N21/00—Investigating or analysing materials by the use of optical means, i.e. using sub-millimetre waves, infrared, visible or ultraviolet light
- G01N21/75—Systems in which material is subjected to a chemical reaction, the progress or the result of the reaction being investigated
- G01N21/77—Systems in which material is subjected to a chemical reaction, the progress or the result of the reaction being investigated by observing the effect on a chemical indicator
- G01N21/7703—Systems in which material is subjected to a chemical reaction, the progress or the result of the reaction being investigated by observing the effect on a chemical indicator using reagent-clad optical fibres or optical waveguides
- G01N2021/7706—Reagent provision
- G01N2021/7709—Distributed reagent, e.g. over length of guide
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N21/00—Investigating or analysing materials by the use of optical means, i.e. using sub-millimetre waves, infrared, visible or ultraviolet light
- G01N21/75—Systems in which material is subjected to a chemical reaction, the progress or the result of the reaction being investigated
- G01N21/77—Systems in which material is subjected to a chemical reaction, the progress or the result of the reaction being investigated by observing the effect on a chemical indicator
- G01N2021/775—Indicator and selective membrane
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N21/00—Investigating or analysing materials by the use of optical means, i.e. using sub-millimetre waves, infrared, visible or ultraviolet light
- G01N21/75—Systems in which material is subjected to a chemical reaction, the progress or the result of the reaction being investigated
- G01N21/77—Systems in which material is subjected to a chemical reaction, the progress or the result of the reaction being investigated by observing the effect on a chemical indicator
- G01N2021/7769—Measurement method of reaction-produced change in sensor
- G01N2021/7776—Index
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N21/00—Investigating or analysing materials by the use of optical means, i.e. using sub-millimetre waves, infrared, visible or ultraviolet light
- G01N21/17—Systems in which incident light is modified in accordance with the properties of the material investigated
- G01N21/55—Specular reflectivity
- G01N21/552—Attenuated total reflection
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N33/00—Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
- G01N33/48—Biological material, e.g. blood, urine; Haemocytometers
- G01N33/483—Physical analysis of biological material
- G01N33/487—Physical analysis of biological material of liquid biological material
- G01N33/49—Blood
- G01N33/491—Blood by separating the blood components
Definitions
- the invention relates to a planar waveguide device, particularly to a planar waveguide device with a miniaturized filter, and the use thereof.
- planar waveguide devices e.g. that the efficiency of the guiding of the light and the interaction with the evanescent field may be improved.
- the invention relates to a planar waveguide device for interacting with a fluid, the planar waveguide device comprising
- One advantage of the invention may be that selective interaction with a fluid is obtained by evanescent interaction with the fluid in the filter openings.
- particles in the fluid are often disturbing for the interaction, e.g. if the potential for interaction is higher for the particles compared to the fluid.
- a further advantage of the invention may be that the selective interaction is obtained in a fast and accurate manner.
- any alternative interaction including or requiring chemical reactions, filtration or separation may be avoided.
- a further advantage of the invention may be that the selective interaction is obtained in a non-destructive way having the relatively little influence on the composition of the fluid.
- the fluid subjected to the planar waveguide device may be substantially uninfluenced after the subjection thereto, and pre-filtering of the fluid may be avoided.
- Possible interactions with the fluid include absorption of the light by the fluid via the evanescent field in the filter openings, excitation of the fluid by the light via the evanescent field in the filter openings, and refractive index measurement of the fluid via evanescent field interactions with the fluid at the out-coupling.
- the above advantage may be obtained in a relatively simple manner, by using the filter layer of the present invention.
- planar waveguide device is intended to mean a device for interacting with a fluid, the device incorporating a waveguide layer for guiding interaction light, i.e. light for interacting with the fluid.
- the waveguide device obtains a planar configuration, and may also be denoted a slab waveguide device.
- fluid is intended to mean a liquid or a gas. It may be used with various liquids, such as e.g. blood, oil, sewage water, or liquid food ingredients, or on gasses, such as e.g. various exhaustion gasses.
- waveguide layer is intended to mean a layer forming a waveguide for the applicable wavelengths of light. Typically, it is covered by an upper cladding layer on one side and a lower cladding layer on the other side, where the cladding layers may have a refractive index lower than the waveguide layer to facilitate guiding of light in the waveguide layer.
- the term "coupling arrangement” is intended to mean an arrangement coupling the light in and out of the waveguide layer. It may be a single coupling element, or it may be composed of e.g. two coupling element, an in-coupling element for coupling light into the waveguide layer and an out-coupling element for coupling light out from the waveguide layer.
- the coupling arrangement may include any couplers suitable for use in coupling light into the waveguide layer and out from the waveguide layer.
- in-coupling element is intended to mean the part of the coupling arrangement coupling light into the waveguide layer.
- the in-coupling element may include any in-couplers suitable for use in coupling light into the waveguide layer.
- out-coupling element is intended to mean the part of the coupling arrangement coupling light out from the waveguide layer.
- the out-coupling element may include any out-couplers suitable for use in coupling light out from the waveguide layer.
- fluid zone is intended to mean a zone for accommodating the fluid.
- the fluid zone may comprise or be a fluid flow channel or a fluidic well.
- Such arrangements may be realized in a number of different ways; however, the important thing is that the fluid to be interacted with is allowed to contact the filter layer so as to allow interaction with the evanescent field in the filter openings.
- interaction region is intended to mean the region wherein the fluid is allowed to interact with the evanescent field of the light passing through the waveguide layer.
- the interaction region corresponds to the region where the filter openings allow this interaction.
- filter openings is intended to mean openings of the filter layer, which allows fluid to pass, but which prevents or inhibits passing of particles larger that a predefined size from passing.
- the filter openings are arranged as line openings, i.e. grooves, forming a grating.
- the dimensions of and the spacing between of the filter openings may be substantially identical, or they may vary, e.g. by gradually increasing the width of the filter openings to allow larger and larger particles to interact with the evanescent field of the light passing through the waveguide layer.
- particles may refer to a variety of different particles, according to the specific use.
- particles in the fluid may have a more or less uniform size and thus all prevented from interacting with the evanescent field, whereas in other embodiments the particles may have different sizes and thus some particles smaller than the predefined size may be allowed to interact with the evanescent field.
- direction of propagation is intended to refer to the direction of the light guided in the waveguide layer.
- the coupling arrangement comprises two separate coupling elements for in coupling an out-coupling of the light to and from the waveguide layer, respectively, the direction of propagation would be from the in-coupling element towards the out-coupling element.
- the term "lower cladding layer” is intended to mean a cladding layer adjacent to the waveguide layer, on the opposite side of the waveguide layer as the filter layer.
- the lower cladding layer has a refractive index lower than that of the waveguide layer to support guiding of light in the waveguide layer.
- the term "upper cladding layer” is intended to mean a cladding layer adjacent to the waveguide layer, on the same side of the waveguide layer as the filter layer.
- the upper cladding layer has a refractive index lower than that of the waveguide layer to support guiding of light in the waveguide layer.
- the upper cladding layer and the filter layer is made from the same material; e.g. the filter layer may be formed by removing parts of an initial upper cladding covering all of the waveguide layer to create filter openings in the interaction region.
- grating is intended to mean a diffractive grating, i.e. a grating that can couple light into a waveguide layer and out from the waveguide layer.
- Typical gratings include any regularly spaced collection of essentially identical, parallel, elongated elements. The spacing of the gratings may be adjusted to the particular wavelength(s) of light to be used.
- the filter openings are defined by a line spacing of at most 10 micrometer, such as at most 5 micrometer, such as at most 1 micrometer, such as at most 800 nanometer, such as at most 200 nanometer, such as at most 100 nanometer.
- the filter layer may be understood to be a miniaturized filter layer or a nano-sized filter layer.
- the filter openings are defined by a line spacing of 10 nanometer to 10 micrometer, such as 50 nanometer to 5 micrometer, such as 100 nanometer to 1 micrometer.
- the line spacing may also be referred to as the width of the filter openings.
- the filter openings have substantially the same dimensions.
- the line spacing is substantially the same over all the filter openings.
- the filter openings may have different dimensions.
- multiple filter openings widths may be utilized in order to filter different particles sizes.
- the outcoupled light may for example be detected by a two-dimensional sensor array, such as a CCD or CMOS sensor, where one direction resolves the spectrum, and the other the filter opening width difference.
- said coupling arrangement comprises an input an in-coupling element for in-coupling of light into the waveguide layer and an out-coupling element for out-coupling of light from the waveguide layer.
- One advantage of the above embodiment may be that the light is allowed to pass through the waveguide layer over a substantial distance thereby allowing interaction, such as absorption or excitation, with the fluid via the evanescent field in the filter openings.
- the interaction region extends between the in-coupling element and the out-coupling element.
- One advantage of the above embodiment may be that the light is allowed to pass through the waveguide layer over a substantial distance thereby allowing interaction, such as absorption or excitation, with the fluid via the evanescent field in the filter openings.
- the interaction region extends between the in-coupling element and the out-coupling element and also over the out-coupling element.
- One advantage of the above embodiment may be that the light travelling in the waveguide layer is allowed to be influence by the refractive index of the fluid during at the out-coupling element.
- the out-coupling of the light from the waveguide layer is influenced by the refractive index of the fluid, and by measuring this influence caused by the refractive index of the fluid, e.g. as a change of deflection of the outcoupled light and/or as a change of wavelength of the light at a fixed position, a measure of the refractive index may advantageously be obtained.
- This embodiment may advantageously allow for interaction between the evanescent field and the fluid by absorption of light or excitation by light at the same time as obtaining a measure of the refractive index the fluid.
- Using a grating as the out-coupling element provides dispersion of the light facilitating the measurement of the refractive index of the fluid.
- said coupling arrangement extends over at least part of the interaction region, such as over the whole of the interaction region.
- the refractive index of the fluid may be obtained.
- the out-coupling of the light from the waveguide layer is influenced by the refractive index of the fluid, and by measuring this influence caused by the refractive index of the fluid, e.g. as a change of deflection of the outcoupled light and/or as a change of wavelength of the light at a fixed position, a measure of the refractive index may advantageously be obtained.
- Using a grating as the out-coupling element provides dispersion of the light facilitating the measurement of the refractive index of the fluid.
- the out-coupling element comprises a dispersive element, such as a grating.
- the dispersive element e.g. the grating
- the dispersive element may be cause diffractive deflection of the light and thereby out-coupling of the light from the waveguide.
- This diffractive deflection is obtained in a wavelength dependent manner; i.e. different wavelengths are deflected in different angles.
- this advantageously allows measurement of the reflective index of the fluid, since the dispersive action, i.e. the angle of out-coupling, is influence by the reflective index of the fluid.
- a measure of the refractive index may advantageously be obtained
- the coupling arrangement may in some embodiments comprise a separate in-coupling element and out-coupling element.
- the coupling arrangement works to both couple light into the waveguide layer and couple the light out from the waveguide layer, i.e. both as an in-coupling element and an out-coupling element.
- the out-coupling element may be a prism based out-coupling element, or direct coupling to an optical fiber.
- the in-coupling element comprises a grating, a prism, or a direct coupling to an optical fiber.
- the planar waveguide layer further comprises an upper cladding layer.
- the upper cladding layer may cover the waveguide layer outside the filter layer.
- the filter layer may be the same layer as the upper cladding layer, where the filter layer is formed by creating openings in the upper layer thereby forming the interaction region.
- the upper cladding layer may have a lower refractive index than the waveguide layer, e.g. at least 0.2 units lower refractive index.
- the waveguide layer is deposited on a lower cladding layer having a lower refractive index, such as at least 0.2 units lower refractive index.
- planar waveguide device may comprise a light source or may receive light from an external light source.
- planar waveguide device further comprises a laser device as a light source.
- One advantage of the above embodiment may be that it enables detection of light by an array based light sensor to give information about influence on the light, such as influence by the refraction index of the fluid at the out-coupling from the waveguide layer.
- planar waveguide device further comprises a broadband light source as a light source.
- One advantage of the above embodiment may be that it enables a spectrometric detection of wavelength at a fixed position to give information about influence on the light, such as influence by the refraction index of the fluid at the out-coupling from the waveguide layer.
- the broadband light source may have a width extending over the whole of the visible spectrum of light, e.g. as taken from 400 to 700 nanometers, i.e. a white light source.
- the planar waveguide device further comprises an array based light sensor, such as a CMOS sensor, CCD sensor or photodiode array sensor.
- an array based light sensor such as a CMOS sensor, CCD sensor or photodiode array sensor.
- One advantage of the above embodiment may be that detection of light from a laser device by an array based light sensor may give information about influence on the light, such as influence by the refraction index of the fluid at the out-coupling from the waveguide layer.
- CMOS sensor and a CCD sensor are each considered as an array comprising a number of pixels.
- the light outcoupled may be separated into its wavelength components.
- an array based light sensor When an array based light sensor is used with a laser light source and using a dispersive element, such as a grating, as the out-coupling element, fluid interactions with the out-coupling, facilitated by the interaction region covering, at least partly, such as fully, the out-coupling element or the whole coupling arrangement, can be detected by detecting the out-coupling angle of the light.
- a dispersive element such as a grating
- the detected wavelength of outcoupled light gives an indication of the interaction with the fluid and thus the refrective index of the fluid.
- the planar waveguide device further comprises a photodiode as a light sensor.
- planar waveguide device further comprises an optical spectrometer as a light sensor.
- One advantage of the above embodiment may be that spectrometric detection of wavelength of light at a fixed position to give information about influence on the light, such as influence by the refraction index of the fluid at the out-coupling from the waveguide layer.
- spectrometric detection of wavelength of light at a fixed position to give information about influence on the light, such as influence by the refraction index of the fluid at the out-coupling from the waveguide layer.
- the fluid is a liquid, such as blood.
- the particles may be red blood cells, particularly, when the planar waveguide device is to function as a blood hemolysis sensor.
- One advantage of the above embodiments may be that an indication of the level of blood hemolysis may be obtained by absorption measurements with wavelengths absorbed by hemoglobin.
- liquids include e.g. waste water, engine oil, food ingredients, etc.
- the filter layer comprises or consists of UV curable polymer (OrmoComp).
- ORMOCER polymers may also be used.
- epoxy polymer like SU8, or other UV curable resists, like acrylic UV resists, or any other nano imprint resists may be used.
- the important thing is that the material is relatively cheap, can be shaped one way or another, and is hard and durable - so it will resist influence by the particles, and resist the chemistry of the fluid.
- the waveguide layer may for example be comprise or be composed of silicon.
- Suitable imprint processes including UV-nanoimprint processes, thermal imprint processes, and UV-thermal-hybrid imprint processes.
- an intermediate layer is interposed between the waveguide layer and the filter layer.
- the intermediate layer may function as a protective layer for the waveguide layer against the fluid and/or it may facilitate selective bonding of certain molecules or substances in the fluid to increase interaction with the evanescent field.
- the invention further relates to the use of a planar waveguide device according to the invention and any of its embodiments for detecting blood hemolysis.
- An indicator of blood hemolysis is presence of free hemoglobin in the blood plasma. This free hemoglobin comes from rupturing of red blood cells, this rupturing is known as blood hemolysis and may be an indicator of the condition of a patient. However, since hemoglobin is also present in the red blood cells, these would typically have to be separated away from the blood plasma to measure the remaining hemoglobin in the blood plasma. Also, the manipulation of the blood, e.g. during filtering, may itself lead to further hemolysis and further free hemoglobin. Since the measured hemoglobin is composed both from hemoglobin from the patient condition induced hemolysis and further hemolysis not related to the patient's condition, the result may be inaccurate or even unusable.
- the free hemoglobin may be measured without any pre-filtering of the red blood cells, since these are kept out of interaction by the filter layer, and thus a far more accurate result may be obtained.
- planar waveguide device of the invention may include absorption measurement, measurements of refractive index of a fluid, and for excitation of the fluid and/or components thereof.
- planar waveguide device PWD a schematic view of a planar waveguide device PWD according to an embodiment of the invention is shown.
- the planar waveguide device PWD is adapted for allowing interaction between a fluid FLD and a light beam LTG. This is done by means of a filter layer FTL, as described in more detail below.
- the planar waveguide device PWD comprises a waveguide layer WGL, a coupling arrangement CPA, a fluid zone FZN for accommodating the fluid FLD, and a filter layer FTL.
- the filter layer FTL is nano-sized in the sense that the width of the filter openings FOP may typically be at most 10 micrometer, such as at most 5 micrometer, such as at most 1 micrometer, such as at most 800 nanometer, such as at most 200 nanometer, such as at most 100 nanometer.
- the planar waveguide device PWD may further comprise a light source LSO and a light sensor LSE.
- the light source LSO emits a light beam LTB, e.g. a laser beam from a laser device or a broadband light beam from a broadband light source.
- the coupling arrangement CPA is adapted for in-coupling and out-coupling of light of the light beam into and from the waveguide layer WGL.
- the coupling arrangement CPA comprises a separate in-coupling element ICPA and a separate out-coupling element OCPA; however, in other embodiments the coupling arrangement CPA may be formed by a single coupling element CPA performing both the in-coupling and out-coupling of the light into and from the waveguide layer WGL.
- the coupling arrangement CPA may comprise a grating, a prism, or a direct coupling to an optical fiber.
- the filter layer FTL comprises filter openings FOP arranged to allow the fluid FLD to interact with an evanescent field of light guided by the waveguide layer WGL.
- the filter layer FTL is arranged between the fluid zone FZN and the waveguide layer WGL in an interaction region IAR of the waveguide layer WGL.
- the filter openings FOP can prevent particles PAR larger than a predefined size from interacting with said evanescent field.
- the predefined size are typically determined by the width of the filter openings FOP, which are in the nano-scale region, e.g. at most 10 micrometer.
- the filter layer FTL separates the fluid zone FZN from the waveguide layer WGL, in the sense that in controls passage of material between the two.
- the planar waveguide device PWD may sometimes comprise a further layer between the filter layer FTL and the waveguide layer WGL, e.g.
- the waveguide layer WGL to provide protection of the waveguide layer WGL or to provide selective boding to e.g. antibodies, polymers, aptamers or other receptors for binding of specimen in the fluid.
- the further layer must be arranged to allow the evanescent field to extend into the fluid.
- interactions with said evanescent field interactions are in the filter openings FOP. I.e. by allowing the fluid FLD to enter into the filter openings FOP, the fluid FLD is allowed to interact with the evanescent field, and by preventing particles PAR larger than a predefined size from entering the filter openings FOP, the particles PAR are prevented from interacting with said evanescent field.
- the filter openings FOP are arranged as line openings having their longitudinal direction in parallel with the direction of propagation DOP of light guided by the waveguide layer WGL. This is illustrated more clearly in some the following figures, e.g. figures 5-6 .
- the filter layer FTL is optically decoupled from the waveguide in the sense that the effect by the filter itself on the light guided by the waveguide layer is minimized or practically avoided.
- the line openings having their longitudinal direction parallel with the direction of propagation DOP of light guided by the waveguide layer WGL is during operation of the planar waveguide device PWD when light is guided in the waveguide layer WGL.
- a planar waveguide device PWD according to a further embodiment of the invention is illustrated in a cross-sectional side view on figure 2 and in a perspective view on figure 5 .
- the in-coupling arrangement CPA is here seen as being made up by two coupling elements; an in-coupling element ICPA, and an out-coupling element OCPA.
- the in-coupling element ICPA and the out-coupling element OCPA are both illustrated as gratings.
- the coupling elements may be provided by different means as mentioned with figure 1 , and need not be the same, e.g. a prism may be used as an in-coupling element ICPA, and a grating may be used as an out-coupling element OCPA.
- a light beam LTB is coupled into the waveguide layer WGL by means of the in-coupling element ICPA, then guided through the waveguide layer WGL in the direction of propagation DOP, passing by filter layer FTL in the interaction region IAR to the out-coupling element OCPA, where it is coupled out from the waveguide layer WGL.
- Light source LSO and light sensor LSE are not illustrated on figures 2 or 5 , but may be utilized as in figure 1 .
- the interaction region IAR defined by the extent of the filter layer FTL extends between the in-coupling element ICPA and the out-coupling element OCPA, but not over any of these.
- the embodiment illustrated in figures 2 and 5 is highly suitable for e.g. absorption and excitation interactions between the fluid and the evanescent field in the filter openings FOP.
- the area where the filter layer FTL does not extend, is covered by an upper cladding layer UCL to facilitate guiding in the waveguide layer WGL.
- a lower cladding layer LCL is positioned below the waveguide layer WGL.
- the refractive indices the of the upper and lower cladding layer UCL, LCL are lower than the refractive index of the waveguide layer WGL.
- the particles PAR not allowed to enter into the filter openings FOP and thus prevented from interacting with the evanescent field therein may represent red blood cells in a blood hemolysis sensor setup.
- figure 5 is made partly see-through to help understand the composition of the varies elements of the illustrated planar waveguide device PWD.
- FIG 3 a slightly modified embodiment is illustrated in a cross-sectional side view.
- the filter layer FTL extends also over the out-coupling element OCPA to allow interaction between the fluid and the evanescent field of the guided light during out-coupling.
- the planar waveguide device PWD illustrated on figure 3 has a guided distance along the filter layer FTL (i.e. the in-coupling element ICPA and the out-coupling elements OCPA are separated by some distance) the fluid FLD is allowed to interact with the evanescent field here, making it suitable for absorption and excitation interactions with the fluid.
- the illustrated planar waveguide device PWD is also suitable for providing information about the refractive index of the fluid FLD.
- Figure 4 illustrates a cross-sectional side view
- figure 6 illustrate a perspective view
- the coupling arrangement CPA is composed by a single coupling element thus providing both in-coupling of light into the waveguide layer WGL and out-coupling therefrom again. Since the out-coupling is performed within the interaction region IAR, the out-coupling is influenced by the refractive index of the fluid FLD, and thus the illustrated planar waveguide devices PWD are suitable for measurement of the refractive index of the fluid FLD.
- figure 6 is made partly see-through to help understand the composition of the varies elements of the illustrated planar waveguide device PWD.
Landscapes
- Health & Medical Sciences (AREA)
- Life Sciences & Earth Sciences (AREA)
- Physics & Mathematics (AREA)
- Engineering & Computer Science (AREA)
- General Physics & Mathematics (AREA)
- Chemical & Material Sciences (AREA)
- Biomedical Technology (AREA)
- General Health & Medical Sciences (AREA)
- Immunology (AREA)
- Pathology (AREA)
- Biochemistry (AREA)
- Analytical Chemistry (AREA)
- Hematology (AREA)
- Optics & Photonics (AREA)
- Ecology (AREA)
- Biophysics (AREA)
- Molecular Biology (AREA)
- Urology & Nephrology (AREA)
- Food Science & Technology (AREA)
- Medicinal Chemistry (AREA)
- Investigating Or Analysing Materials By Optical Means (AREA)
- Optical Integrated Circuits (AREA)
- Optical Couplings Of Light Guides (AREA)
Abstract
A planar waveguide device (PWD) for interacting with a fluid (FLD) is disclosed, the planar waveguide device (PWD) comprising
- a waveguide layer (WGL),
- a coupling arrangement (CPA) for in-coupling and out-coupling of light into and from the waveguide layer (WGL),
- a fluid zone (FZN) for accommodating the fluid (FLD),
- a filter layer (FTL) arranged between the fluid zone (FZN) and the waveguide layer (WGL) in an interaction region (IAR) of the waveguide layer (WGL),
wherein the filter layer (FTL) comprises filter openings (FOP) arranged to allow the fluid (FLD) to interact with an evanescent field of light guided by the waveguide layer (WGL),
wherein the filter openings (FOP) are adapted to prevent particles (PAR) larger than a predefined size from interacting with said evanescent field,
wherein the filter openings (FOP) are arranged as line openings having their longitudinal direction in parallel with the direction of propagation (DOP) of light guided by the waveguide layer (WGL). Also, use of the planar waveguide device (PWD) for detecting blood hemolysis is disclosed.
Description
- The invention relates to a planar waveguide device, particularly to a planar waveguide device with a miniaturized filter, and the use thereof.
- Various planar waveguide devices allowing interactions between a fluid an evanescent field from the waveguide layer are known in the art. One example is shown in
US 2012/0085894 A1 . - However, some problems may still exist with known planar waveguide devices, e.g. that the efficiency of the guiding of the light and the interaction with the evanescent field may be improved.
- The invention relates to a planar waveguide device for interacting with a fluid, the planar waveguide device comprising
- a waveguide layer,
- a coupling arrangement for in-coupling and out-coupling of light into and from the waveguide layer,
- a fluid zone for accommodating the fluid,
- a filter layer arranged between the fluid zone and the waveguide layer in an interaction region of the waveguide layer,
- One advantage of the invention may be that selective interaction with a fluid is obtained by evanescent interaction with the fluid in the filter openings. In more detail, particles in the fluid are often disturbing for the interaction, e.g. if the potential for interaction is higher for the particles compared to the fluid.
- A further advantage of the invention may be that the selective interaction is obtained in a fast and accurate manner. By optical interaction with the fluid, any alternative interaction including or requiring chemical reactions, filtration or separation may be avoided.
- A further advantage of the invention may be that the selective interaction is obtained in a non-destructive way having the relatively little influence on the composition of the fluid. In more detail, the fluid subjected to the planar waveguide device may be substantially uninfluenced after the subjection thereto, and pre-filtering of the fluid may be avoided.
- Possible interactions with the fluid include absorption of the light by the fluid via the evanescent field in the filter openings, excitation of the fluid by the light via the evanescent field in the filter openings, and refractive index measurement of the fluid via evanescent field interactions with the fluid at the out-coupling.
- Also, the above advantage may be obtained in a relatively simple manner, by using the filter layer of the present invention.
- As used herein the term "planar waveguide device" is intended to mean a device for interacting with a fluid, the device incorporating a waveguide layer for guiding interaction light, i.e. light for interacting with the fluid. By using a waveguide layer, the waveguide device obtains a planar configuration, and may also be denoted a slab waveguide device.
- As used herein the term "fluid" is intended to mean a liquid or a gas. It may be used with various liquids, such as e.g. blood, oil, sewage water, or liquid food ingredients, or on gasses, such as e.g. various exhaustion gasses.
- As used herein the term "waveguide layer" is intended to mean a layer forming a waveguide for the applicable wavelengths of light. Typically, it is covered by an upper cladding layer on one side and a lower cladding layer on the other side, where the cladding layers may have a refractive index lower than the waveguide layer to facilitate guiding of light in the waveguide layer.
- As used herein the term "coupling arrangement" is intended to mean an arrangement coupling the light in and out of the waveguide layer. It may be a single coupling element, or it may be composed of e.g. two coupling element, an in-coupling element for coupling light into the waveguide layer and an out-coupling element for coupling light out from the waveguide layer. The coupling arrangement may include any couplers suitable for use in coupling light into the waveguide layer and out from the waveguide layer.
- As used herein the term "in-coupling element" is intended to mean the part of the coupling arrangement coupling light into the waveguide layer. The in-coupling element may include any in-couplers suitable for use in coupling light into the waveguide layer.
- As used herein the term "out-coupling element" is intended to mean the part of the coupling arrangement coupling light out from the waveguide layer. The out-coupling element may include any out-couplers suitable for use in coupling light out from the waveguide layer.
- As used herein the term "fluid zone" is intended to mean a zone for accommodating the fluid. The fluid zone may comprise or be a fluid flow channel or a fluidic well.
- Such arrangements may be realized in a number of different ways; however, the important thing is that the fluid to be interacted with is allowed to contact the filter layer so as to allow interaction with the evanescent field in the filter openings.
- As used herein the term "interaction region" is intended to mean the region wherein the fluid is allowed to interact with the evanescent field of the light passing through the waveguide layer. Thus, the interaction region corresponds to the region where the filter openings allow this interaction.
- As used herein the term "filter openings" is intended to mean openings of the filter layer, which allows fluid to pass, but which prevents or inhibits passing of particles larger that a predefined size from passing. The filter openings are arranged as line openings, i.e. grooves, forming a grating. The dimensions of and the spacing between of the filter openings may be substantially identical, or they may vary, e.g. by gradually increasing the width of the filter openings to allow larger and larger particles to interact with the evanescent field of the light passing through the waveguide layer.
- As used herein the term "particles" may refer to a variety of different particles, according to the specific use. In some embodiments particles in the fluid may have a more or less uniform size and thus all prevented from interacting with the evanescent field, whereas in other embodiments the particles may have different sizes and thus some particles smaller than the predefined size may be allowed to interact with the evanescent field.
- As used herein the term "direction of propagation" is intended to refer to the direction of the light guided in the waveguide layer. For example, when the coupling arrangement comprises two separate coupling elements for in coupling an out-coupling of the light to and from the waveguide layer, respectively, the direction of propagation would be from the in-coupling element towards the out-coupling element.
- As used herein the term "lower cladding layer" is intended to mean a cladding layer adjacent to the waveguide layer, on the opposite side of the waveguide layer as the filter layer. Typically, the lower cladding layer has a refractive index lower than that of the waveguide layer to support guiding of light in the waveguide layer.
- As used herein the term "upper cladding layer" is intended to mean a cladding layer adjacent to the waveguide layer, on the same side of the waveguide layer as the filter layer. Typically, the upper cladding layer has a refractive index lower than that of the waveguide layer to support guiding of light in the waveguide layer. In some embodiments, the upper cladding layer and the filter layer is made from the same material; e.g. the filter layer may be formed by removing parts of an initial upper cladding covering all of the waveguide layer to create filter openings in the interaction region.
- As used herein the term "grating" is intended to mean a diffractive grating, i.e. a grating that can couple light into a waveguide layer and out from the waveguide layer. Typical gratings include any regularly spaced collection of essentially identical, parallel, elongated elements. The spacing of the gratings may be adjusted to the particular wavelength(s) of light to be used.
- According to an advantageous embodiment of the invention the filter openings are defined by a line spacing of at most 10 micrometer, such as at most 5 micrometer, such as at most 1 micrometer, such as at most 800 nanometer, such as at most 200 nanometer, such as at most 100 nanometer. I.e. the filter layer may be understood to be a miniaturized filter layer or a nano-sized filter layer.
- According to an embodiment of the invention the filter openings are defined by a line spacing of 10 nanometer to 10 micrometer, such as 50 nanometer to 5 micrometer, such as 100 nanometer to 1 micrometer. The line spacing may also be referred to as the width of the filter openings.
- According to an embodiment of the invention the filter openings have substantially the same dimensions. In other words, the line spacing is substantially the same over all the filter openings.
- In other embodiments, the filter openings may have different dimensions. For example, multiple filter openings widths may be utilized in order to filter different particles sizes. The outcoupled light may for example be detected by a two-dimensional sensor array, such as a CCD or CMOS sensor, where one direction resolves the spectrum, and the other the filter opening width difference.
- According to an advantageous embodiment of the invention said coupling arrangement comprises an input an in-coupling element for in-coupling of light into the waveguide layer and an out-coupling element for out-coupling of light from the waveguide layer.
- One advantage of the above embodiment may be that the light is allowed to pass through the waveguide layer over a substantial distance thereby allowing interaction, such as absorption or excitation, with the fluid via the evanescent field in the filter openings.
- According to an advantageous embodiment of the invention the interaction region extends between the in-coupling element and the out-coupling element.
- One advantage of the above embodiment may be that the light is allowed to pass through the waveguide layer over a substantial distance thereby allowing interaction, such as absorption or excitation, with the fluid via the evanescent field in the filter openings.
- According to an advantageous embodiment of the invention the interaction region extends between the in-coupling element and the out-coupling element and also over the out-coupling element.
- One advantage of the above embodiment may be that the light travelling in the waveguide layer is allowed to be influence by the refractive index of the fluid during at the out-coupling element. In other words, the out-coupling of the light from the waveguide layer is influenced by the refractive index of the fluid, and by measuring this influence caused by the refractive index of the fluid, e.g. as a change of deflection of the outcoupled light and/or as a change of wavelength of the light at a fixed position, a measure of the refractive index may advantageously be obtained. This embodiment may advantageously allow for interaction between the evanescent field and the fluid by absorption of light or excitation by light at the same time as obtaining a measure of the refractive index the fluid.
- Using a grating as the out-coupling element provides dispersion of the light facilitating the measurement of the refractive index of the fluid.
- According to an advantageous embodiment of the invention said coupling arrangement extends over at least part of the interaction region, such as over the whole of the interaction region.
- One advantage of the above embodiment may be that the refractive index of the fluid may be obtained. By allowing the fluid to interact with the evanescent field of the light at the coupling arrangement, i.e. also at the position of the out-coupling of the light, the out-coupling of the light from the waveguide layer is influenced by the refractive index of the fluid, and by measuring this influence caused by the refractive index of the fluid, e.g. as a change of deflection of the outcoupled light and/or as a change of wavelength of the light at a fixed position, a measure of the refractive index may advantageously be obtained.
- Using a grating as the out-coupling element provides dispersion of the light facilitating the measurement of the refractive index of the fluid.
- According to an advantageous embodiment of the invention the out-coupling element comprises a dispersive element, such as a grating.
- One advantage of the above embodiment may be that the dispersive element, e.g. the grating, may be cause diffractive deflection of the light and thereby out-coupling of the light from the waveguide. This diffractive deflection is obtained in a wavelength dependent manner; i.e. different wavelengths are deflected in different angles. Especially when combined with embodiments where the interaction region is allowed to extend, at least partly, over the out-coupling element, this advantageously allows measurement of the reflective index of the fluid, since the dispersive action, i.e. the angle of out-coupling, is influence by the reflective index of the fluid. Thus, by measuring this influence caused by the refractive index of the fluid, e.g. as a change of deflection of the outcoupled light and/or as a change of wavelength of the light at a fixed position, a measure of the refractive index may advantageously be obtained
- As illustrated above, the coupling arrangement may in some embodiments comprise a separate in-coupling element and out-coupling element. In other embodiments, the coupling arrangement works to both couple light into the waveguide layer and couple the light out from the waveguide layer, i.e. both as an in-coupling element and an out-coupling element.
- Alternatively, the out-coupling element may be a prism based out-coupling element, or direct coupling to an optical fiber.
- According to an embodiment of the invention, the in-coupling element comprises a grating, a prism, or a direct coupling to an optical fiber.
- According to an embodiment of the invention the planar waveguide layer further comprises an upper cladding layer. The upper cladding layer may cover the waveguide layer outside the filter layer. In some embodiments the filter layer may be the same layer as the upper cladding layer, where the filter layer is formed by creating openings in the upper layer thereby forming the interaction region. Typically, the upper cladding layer may have a lower refractive index than the waveguide layer, e.g. at least 0.2 units lower refractive index.
- According to an embodiment of the invention the waveguide layer is deposited on a lower cladding layer having a lower refractive index, such as at least 0.2 units lower refractive index.
- It should be understood that the planar waveguide device may comprise a light source or may receive light from an external light source.
- According to an advantageous embodiment of the invention the planar waveguide device further comprises a laser device as a light source.
- One advantage of the above embodiment may be that it enables detection of light by an array based light sensor to give information about influence on the light, such as influence by the refraction index of the fluid at the out-coupling from the waveguide layer.
- According to an advantageous embodiment of the invention the planar waveguide device further comprises a broadband light source as a light source.
- One advantage of the above embodiment may be that it enables a spectrometric detection of wavelength at a fixed position to give information about influence on the light, such as influence by the refraction index of the fluid at the out-coupling from the waveguide layer.
- For example, the broadband light source may have a width extending over the whole of the visible spectrum of light, e.g. as taken from 400 to 700 nanometers, i.e. a white light source.
- According to an advantageous embodiment of the invention the planar waveguide device further comprises an array based light sensor, such as a CMOS sensor, CCD sensor or photodiode array sensor.
- One advantage of the above embodiment may be that detection of light from a laser device by an array based light sensor may give information about influence on the light, such as influence by the refraction index of the fluid at the out-coupling from the waveguide layer.
- In this context a CMOS sensor and a CCD sensor are each considered as an array comprising a number of pixels.
- Using a dispersive element, such as a grating, the light outcoupled may be separated into its wavelength components.
- When an array based light sensor is used with a laser light source and using a dispersive element, such as a grating, as the out-coupling element, fluid interactions with the out-coupling, facilitated by the interaction region covering, at least partly, such as fully, the out-coupling element or the whole coupling arrangement, can be detected by detecting the out-coupling angle of the light.
- When an array based light sensor is used with a broadband light source interactions between the fluid and the out-coupling leads to a different wavelength of outcoupled light at a particular fixed position of the light sensor. Thus, using an optical spectrometer as the light sensor, the detected wavelength of outcoupled light gives an indication of the interaction with the fluid and thus the refrective index of the fluid.
- According to an embodiment of the invention the planar waveguide device further comprises a photodiode as a light sensor.
- According to an advantageous embodiment of the invention the planar waveguide device further comprises an optical spectrometer as a light sensor.
- One advantage of the above embodiment may be that spectrometric detection of wavelength of light at a fixed position to give information about influence on the light, such as influence by the refraction index of the fluid at the out-coupling from the waveguide layer. By using a broadband light source, a sufficient range of available wavelengths enables detection of light by the optical spectrometer for fluids having a sufficient range of refractive indices.
- According to an advantageous embodiment of the invention the fluid is a liquid, such as blood.
- In embodiments where the liquid is blood, the particles may be red blood cells, particularly, when the planar waveguide device is to function as a blood hemolysis sensor.
- One advantage of the above embodiments may be that an indication of the level of blood hemolysis may be obtained by absorption measurements with wavelengths absorbed by hemoglobin.
- Further possible liquids, according to various embodiments, include e.g. waste water, engine oil, food ingredients, etc.
- According to an embodiment the filter layer comprises or consists of UV curable polymer (OrmoComp). Other ORMOCER polymers may also be used. Also, epoxy polymer like SU8, or other UV curable resists, like acrylic UV resists, or any other nano imprint resists may be used. The important thing is that the material is relatively cheap, can be shaped one way or another, and is hard and durable - so it will resist influence by the particles, and resist the chemistry of the fluid. The waveguide layer may for example be comprise or be composed of silicon.
- Various known methods may be used to create the filter layer, for example various suitable imprint processes including UV-nanoimprint processes, thermal imprint processes, and UV-thermal-hybrid imprint processes.
- According to an embodiment of the invention, an intermediate layer is interposed between the waveguide layer and the filter layer. The intermediate layer may function as a protective layer for the waveguide layer against the fluid and/or it may facilitate selective bonding of certain molecules or substances in the fluid to increase interaction with the evanescent field.
- The invention further relates to the use of a planar waveguide device according to the invention and any of its embodiments for detecting blood hemolysis.
- An indicator of blood hemolysis is presence of free hemoglobin in the blood plasma. This free hemoglobin comes from rupturing of red blood cells, this rupturing is known as blood hemolysis and may be an indicator of the condition of a patient. However, since hemoglobin is also present in the red blood cells, these would typically have to be separated away from the blood plasma to measure the remaining hemoglobin in the blood plasma. Also, the manipulation of the blood, e.g. during filtering, may itself lead to further hemolysis and further free hemoglobin. Since the measured hemoglobin is composed both from hemoglobin from the patient condition induced hemolysis and further hemolysis not related to the patient's condition, the result may be inaccurate or even unusable.
- However, by means of the planar waveguide device of the present invention, the free hemoglobin may be measured without any pre-filtering of the red blood cells, since these are kept out of interaction by the filter layer, and thus a far more accurate result may be obtained.
- Various other uses of the planar waveguide device of the invention and any of its embodiments may include absorption measurement, measurements of refractive index of a fluid, and for excitation of the fluid and/or components thereof.
- The invention will now be described with reference to the figures where
-
Figure 1 illustrates a general planar waveguide device according to an embodiment of the invention, -
Figures 2-4 illustrate cross-section side views of planar waveguide devices according to embodiments of the invention, and -
Figures 5-6 illustrate perspective views of planar waveguide devices according to an embodiments of the invention. - Referring to
figure 1 , a schematic view of a planar waveguide device PWD according to an embodiment of the invention is shown. The planar waveguide device PWD is adapted for allowing interaction between a fluid FLD and a light beam LTG. This is done by means of a filter layer FTL, as described in more detail below. - Further embodiments are illustrated in more detail on
figures 2-6 , and all of these embodiments may be understood in the light offigure 1 and the discussion thereof below. - Returning to
figure 1 , the planar waveguide device PWD comprises a waveguide layer WGL, a coupling arrangement CPA, a fluid zone FZN for accommodating the fluid FLD, and a filter layer FTL. - The filter layer FTL is nano-sized in the sense that the width of the filter openings FOP may typically be at most 10 micrometer, such as at most 5 micrometer, such as at most 1 micrometer, such as at most 800 nanometer, such as at most 200 nanometer, such as at most 100 nanometer.
- The planar waveguide device PWD may further comprise a light source LSO and a light sensor LSE. The light source LSO emits a light beam LTB, e.g. a laser beam from a laser device or a broadband light beam from a broadband light source.
- The coupling arrangement CPA is adapted for in-coupling and out-coupling of light of the light beam into and from the waveguide layer WGL. In
figure 1 , the coupling arrangement CPA comprises a separate in-coupling element ICPA and a separate out-coupling element OCPA; however, in other embodiments the coupling arrangement CPA may be formed by a single coupling element CPA performing both the in-coupling and out-coupling of the light into and from the waveguide layer WGL. The coupling arrangement CPA may comprise a grating, a prism, or a direct coupling to an optical fiber. - The filter layer FTL comprises filter openings FOP arranged to allow the fluid FLD to interact with an evanescent field of light guided by the waveguide layer WGL.
- The filter layer FTL is arranged between the fluid zone FZN and the waveguide layer WGL in an interaction region IAR of the waveguide layer WGL. Thereby, the filter openings FOP can prevent particles PAR larger than a predefined size from interacting with said evanescent field. The predefined size are typically determined by the width of the filter openings FOP, which are in the nano-scale region, e.g. at most 10 micrometer. In other words, the filter layer FTL separates the fluid zone FZN from the waveguide layer WGL, in the sense that in controls passage of material between the two. The planar waveguide device PWD may sometimes comprise a further layer between the filter layer FTL and the waveguide layer WGL, e.g. to provide protection of the waveguide layer WGL or to provide selective boding to e.g. antibodies, polymers, aptamers or other receptors for binding of specimen in the fluid. However, the further layer must be arranged to allow the evanescent field to extend into the fluid.
- Further to the above it should be understood that interactions with said evanescent field interactions are in the filter openings FOP. I.e. by allowing the fluid FLD to enter into the filter openings FOP, the fluid FLD is allowed to interact with the evanescent field, and by preventing particles PAR larger than a predefined size from entering the filter openings FOP, the particles PAR are prevented from interacting with said evanescent field.
- The filter openings FOP are arranged as line openings having their longitudinal direction in parallel with the direction of propagation DOP of light guided by the waveguide layer WGL. This is illustrated more clearly in some the following figures, e.g.
figures 5-6 . Thereby, the filter layer FTL is optically decoupled from the waveguide in the sense that the effect by the filter itself on the light guided by the waveguide layer is minimized or practically avoided. Here it should be understood that the line openings having their longitudinal direction parallel with the direction of propagation DOP of light guided by the waveguide layer WGL is during operation of the planar waveguide device PWD when light is guided in the waveguide layer WGL. - Now, referring to
figures 2 and5 , a planar waveguide device PWD according to a further embodiment of the invention is illustrated in a cross-sectional side view onfigure 2 and in a perspective view onfigure 5 . - Further to what is illustrated on
figure 1 , the in-coupling arrangement CPA is here seen as being made up by two coupling elements; an in-coupling element ICPA, and an out-coupling element OCPA. - In
figures 2 and5 the in-coupling element ICPA and the out-coupling element OCPA are both illustrated as gratings. However, in other embodiments the coupling elements may be provided by different means as mentioned withfigure 1 , and need not be the same, e.g. a prism may be used as an in-coupling element ICPA, and a grating may be used as an out-coupling element OCPA. - A light beam LTB is coupled into the waveguide layer WGL by means of the in-coupling element ICPA, then guided through the waveguide layer WGL in the direction of propagation DOP, passing by filter layer FTL in the interaction region IAR to the out-coupling element OCPA, where it is coupled out from the waveguide layer WGL.
- Light source LSO and light sensor LSE are not illustrated on
figures 2 or5 , but may be utilized as infigure 1 . - As can be seen from both
figures 2 and5 , the interaction region IAR defined by the extent of the filter layer FTL extends between the in-coupling element ICPA and the out-coupling element OCPA, but not over any of these. Thus, the embodiment illustrated infigures 2 and5 is highly suitable for e.g. absorption and excitation interactions between the fluid and the evanescent field in the filter openings FOP. The area where the filter layer FTL does not extend, is covered by an upper cladding layer UCL to facilitate guiding in the waveguide layer WGL. Similarly, a lower cladding layer LCL is positioned below the waveguide layer WGL. Typically, the refractive indices the of the upper and lower cladding layer UCL, LCL are lower than the refractive index of the waveguide layer WGL. - In
figure 5 the particles PAR not allowed to enter into the filter openings FOP and thus prevented from interacting with the evanescent field therein may represent red blood cells in a blood hemolysis sensor setup. However, they also illustrate the more general principle that particles having a size, e.g. a diameter, larger than a predefined size defined by the width of the filter openings FOP, are prevented from entering the filter openings FOP and interacting with the evanescent field. - It is noted that
figure 5 is made partly see-through to help understand the composition of the varies elements of the illustrated planar waveguide device PWD. - On
figure 3 a slightly modified embodiment is illustrated in a cross-sectional side view. Here, the filter layer FTL extends also over the out-coupling element OCPA to allow interaction between the fluid and the evanescent field of the guided light during out-coupling. Since the planar waveguide device PWD illustrated onfigure 3 has a guided distance along the filter layer FTL (i.e. the in-coupling element ICPA and the out-coupling elements OCPA are separated by some distance) the fluid FLD is allowed to interact with the evanescent field here, making it suitable for absorption and excitation interactions with the fluid. Since the filter layer FTL and this the interaction region IAR extends also over the out-coupling element OCPA, the illustrated planar waveguide device PWD is also suitable for providing information about the refractive index of the fluid FLD. - Now referring to
figures 4 and6 , two similar embodiments are illustrated.Figure 4 illustrates a cross-sectional side view, whilefigure 6 illustrate a perspective view. Whilefigure 6 illustrates only the interaction region IAR,figure 4 shows also the waveguide layer WGL extending a bit beyond that. In both embodiments, the coupling arrangement CPA is composed by a single coupling element thus providing both in-coupling of light into the waveguide layer WGL and out-coupling therefrom again. Since the out-coupling is performed within the interaction region IAR, the out-coupling is influenced by the refractive index of the fluid FLD, and thus the illustrated planar waveguide devices PWD are suitable for measurement of the refractive index of the fluid FLD. - It is noted that
figure 6 is made partly see-through to help understand the composition of the varies elements of the illustrated planar waveguide device PWD. -
- PWD.
- Planar waveguide device
- FLD.
- Fluid
- WGL.
- Waveguide layer
- CPA.
- Coupling arrangement
- FTL.
- Filter layer
- ICPA.
- In-coupling element
- OCPA.
- Out-coupling element
- FZN.
- Fluid zone
- IAR.
- Interaction region
- FOP.
- Filter openings
- PAR.
- Particles
- DOP.
- Direction of propagation
- LCL.
- Lower cladding layer
- UCL.
- Upper cladding layer
- LSE.
- Light sensor
- LSO.
- Light source
- LTB.
- Light beam
wherein the filter openings are adapted to prevent particles larger than a predefined size from interacting with said evanescent field,
wherein the filter openings are arranged as line openings having their longitudinal direction in parallel with the direction of propagation of light guided by the waveguide layer.
Claims (13)
1. A planar waveguide device (PWD) for interacting with a fluid (FLD), the planar waveguide device (PWD) comprising
wherein the filter openings (FOP) are adapted to prevent particles (PAR) larger than a predefined size from interacting with said evanescent field,
wherein the filter openings (FOP) are arranged as line openings having their longitudinal direction in parallel with the direction of propagation (DOP) of light guided by the waveguide layer (WGL).
- a waveguide layer (WGL),
- a coupling arrangement (CPA) for in-coupling and out-coupling of light into and from the waveguide layer (WGL),
- a fluid zone (FZN) for accommodating the fluid (FLD),
- a filter layer (FTL) arranged between the fluid zone (FZN) and the waveguide layer (WGL) in an interaction region (IAR) of the waveguide layer (WGL),
wherein the filter layer (FTL) comprises filter openings (FOP) arranged to allow the fluid (FLD) to interact with an evanescent field of light guided by the waveguide layer (WGL),wherein the filter openings (FOP) are adapted to prevent particles (PAR) larger than a predefined size from interacting with said evanescent field,
wherein the filter openings (FOP) are arranged as line openings having their longitudinal direction in parallel with the direction of propagation (DOP) of light guided by the waveguide layer (WGL).
2. The planar waveguide device (PWD) according to claim 1, wherein the filter openings (FOP) are defined by a line spacing of at most 10 micrometer, such as at most 5 micrometer, such as at most 1 micrometer, such as at most 800 nanometer, such as at most 200 nanometer, such as at most 100 nanometer.
3. The planar waveguide device (PWD) according to claim 1 or 2, wherein said coupling arrangement (CPA) comprises an input an in-coupling element (ICPA) for in-coupling of light into the waveguide layer (WGL) and an out-coupling element (OCPA) for out-coupling of light from the waveguide layer (WGL).
4. The planar waveguide device (PWD) according to claim 3, wherein the interaction region (IAR) extends between the in-coupling element (ICPA) and the out-coupling element (OCPA).
5. The planar waveguide device (PWD) according to claim 3, wherein the interaction region (IAR) extends between the in-coupling element (ICPA) and the out-coupling element (OCPA) and also over the out-coupling element (OCPA).
6. The planar waveguide device (PWD) according to claim 1 or 2, wherein said coupling arrangement (CPA) extends over at least part of the interaction region (IAR), such as over the whole of the interaction region (IAR).
7. The planar waveguide device (PWD) according to any of claims 1-6, wherein the out-coupling element (OCPA) comprises a dispersive element, such as a grating.
8. The planar waveguide device (PWD) according to any of claims 1-7, wherein the planar waveguide device (PWD) further comprises a laser device as a light source (LSO).
9. The planar waveguide device (PWD) according to any of claims 1-8, wherein the planar waveguide device (PWD) further comprises a broadband light source as a light source (LSO).
10. The planar waveguide device (PWD) according to any of claims 1-9, wherein the planar waveguide device (PWD) further comprises an array based light sensor (LSE), such as a CMOS sensor, CCD sensor or photodiode array sensor.
10. The planar waveguide device (PWD) according to any of claims 1-9, wherein the planar waveguide device (PWD) further comprises an optical spectrometer as a light sensor (LSE).
12. The planar waveguide device (PWD) according to any of claims 1-11, wherein the fluid (FLD) is a liquid, such as blood.
13. Use of a planar waveguide device (PWD) according to any of claims 1-12 for detecting blood hemolysis.
Priority Applications (7)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
EP17158711.6A EP3370058A1 (en) | 2017-03-01 | 2017-03-01 | Planar waveguide device with nano-sized filter |
CN201880015318.3A CN110462379B (en) | 2017-03-01 | 2018-02-28 | Planar waveguide device with nano-sized filter |
PCT/DK2018/050040 WO2018157899A1 (en) | 2017-03-01 | 2018-02-28 | Planar waveguide device with nano-sized filter |
JP2019547511A JP6967078B2 (en) | 2017-03-01 | 2018-02-28 | Planar waveguide device with nano-sized filters |
EP18707844.9A EP3589936B1 (en) | 2017-03-01 | 2018-02-28 | Planar waveguide device with nano-sized filter |
US16/489,762 US11255780B2 (en) | 2017-03-01 | 2018-02-28 | Planar waveguide device with nano-sized filter |
JP2021172278A JP7335933B2 (en) | 2017-03-01 | 2021-10-21 | Planar waveguide devices with nano-sized filters |
Applications Claiming Priority (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
EP17158711.6A EP3370058A1 (en) | 2017-03-01 | 2017-03-01 | Planar waveguide device with nano-sized filter |
Publications (1)
Publication Number | Publication Date |
---|---|
EP3370058A1 true EP3370058A1 (en) | 2018-09-05 |
Family
ID=58212973
Family Applications (2)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
EP17158711.6A Withdrawn EP3370058A1 (en) | 2017-03-01 | 2017-03-01 | Planar waveguide device with nano-sized filter |
EP18707844.9A Active EP3589936B1 (en) | 2017-03-01 | 2018-02-28 | Planar waveguide device with nano-sized filter |
Family Applications After (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
EP18707844.9A Active EP3589936B1 (en) | 2017-03-01 | 2018-02-28 | Planar waveguide device with nano-sized filter |
Country Status (5)
Country | Link |
---|---|
US (1) | US11255780B2 (en) |
EP (2) | EP3370058A1 (en) |
JP (2) | JP6967078B2 (en) |
CN (1) | CN110462379B (en) |
WO (1) | WO2018157899A1 (en) |
Citations (7)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
WO1988001376A1 (en) * | 1986-08-14 | 1988-02-25 | Radiometer A/S | Method and apparatus for determining the level of an analyte in a sample of whole blood |
US5362445A (en) * | 1990-07-27 | 1994-11-08 | Hitachi, Ltd. | Biochemical analyzer and attenuated total reflection prism cell used in said analyzer |
US6903815B2 (en) * | 2001-11-22 | 2005-06-07 | Kabushiki Kaisha Toshiba | Optical waveguide sensor, device, system and method for glucose measurement |
US7200311B1 (en) * | 2004-04-08 | 2007-04-03 | Stc.Unm | Surface corrugation on internal reflection infrared waveguide for enhanced detection sensitivity and selectivity |
US20120085894A1 (en) | 2008-09-16 | 2012-04-12 | Pacific Biosciences Of California, Inc. | Substrates and optical systems and methods of use thereof |
WO2015168776A1 (en) * | 2014-05-08 | 2015-11-12 | The Governing Council Of The University Of Toronto | Multimode spectroscopy apparatuses and methods |
WO2016168090A1 (en) * | 2015-04-14 | 2016-10-20 | Nueon, Inc. | Method and apparatus for determining markers of health by analysis of blood |
Family Cites Families (20)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPH0484738A (en) | 1990-07-27 | 1992-03-18 | Hitachi Ltd | Cell for total-reflection attenuation prism |
US6355198B1 (en) * | 1996-03-15 | 2002-03-12 | President And Fellows Of Harvard College | Method of forming articles including waveguides via capillary micromolding and microtransfer molding |
JP3586237B2 (en) | 2001-11-22 | 2004-11-10 | 株式会社東芝 | Optical waveguide type biochemical sensor |
DE10241893A1 (en) | 2002-09-10 | 2004-03-11 | Robert Bosch Gmbh | Combustion engine angular position or velocity determination system in which incremental encoder wheel markings are compensated based on comparison of their positions and corresponding pressure measurements with ideal values |
FR2846745B1 (en) * | 2002-10-30 | 2004-12-24 | Genewave | DEVICE FOR SUPPORTING CHROMOPHORE ELEMENTS. |
DE10251893A1 (en) * | 2002-11-07 | 2004-05-19 | C-Cit Ag | Optical sensor, for quantitative measurement of enzyme activities, has a transparent layer on a carrier with a grid between them to switch electromagnetic waves on/off as a disposable chip |
JP4673714B2 (en) * | 2004-12-27 | 2011-04-20 | 株式会社東芝 | Optical waveguide type biochemical sensor chip and manufacturing method thereof |
CN101726462B (en) * | 2005-09-29 | 2013-01-23 | 株式会社东芝 | Optical waveguide type biochemical sensor chip and method of manufacturing the same |
JP2007263736A (en) * | 2006-03-28 | 2007-10-11 | Fdk Corp | Measuring system using surface plasmon resonance sensor |
JP2009085825A (en) | 2007-10-01 | 2009-04-23 | Kagawa Univ | Surface plasmon resonance chip |
WO2009060360A2 (en) | 2007-11-05 | 2009-05-14 | Koninklijke Philips Electronics N.V. | Microelectronic opiacal evanescent field sensor |
JP2009115666A (en) | 2007-11-07 | 2009-05-28 | Toshiba Corp | Optical waveguide type sensor |
JP2011169592A (en) | 2008-05-30 | 2011-09-01 | Soka Univ | Measuring instrument and measuring system |
US9482615B2 (en) * | 2010-03-15 | 2016-11-01 | Industrial Technology Research Institute | Single-molecule detection system and methods |
CN103492859B (en) * | 2011-02-28 | 2017-05-24 | 皇家飞利浦有限公司 | Substance determining apparatus |
JP5901012B2 (en) * | 2012-02-13 | 2016-04-06 | 国立大学法人 東京医科歯科大学 | Blood information measuring method and apparatus |
JP5846639B2 (en) | 2012-06-01 | 2016-01-20 | 日本電信電話株式会社 | Analytical element |
US9297816B1 (en) * | 2012-12-21 | 2016-03-29 | University Of South Florida | Devices and methods for measuring blood coagulation |
US9851290B2 (en) * | 2015-06-22 | 2017-12-26 | Sharp Laboratories Of America, Inc. | Particle detector for particulate matter accumulated on a surface |
US20180364223A1 (en) * | 2017-06-16 | 2018-12-20 | Krista Michelle Fretes | Portable single-molecule bio-sensing device |
-
2017
- 2017-03-01 EP EP17158711.6A patent/EP3370058A1/en not_active Withdrawn
-
2018
- 2018-02-28 CN CN201880015318.3A patent/CN110462379B/en active Active
- 2018-02-28 EP EP18707844.9A patent/EP3589936B1/en active Active
- 2018-02-28 JP JP2019547511A patent/JP6967078B2/en active Active
- 2018-02-28 US US16/489,762 patent/US11255780B2/en active Active
- 2018-02-28 WO PCT/DK2018/050040 patent/WO2018157899A1/en unknown
-
2021
- 2021-10-21 JP JP2021172278A patent/JP7335933B2/en active Active
Patent Citations (7)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
WO1988001376A1 (en) * | 1986-08-14 | 1988-02-25 | Radiometer A/S | Method and apparatus for determining the level of an analyte in a sample of whole blood |
US5362445A (en) * | 1990-07-27 | 1994-11-08 | Hitachi, Ltd. | Biochemical analyzer and attenuated total reflection prism cell used in said analyzer |
US6903815B2 (en) * | 2001-11-22 | 2005-06-07 | Kabushiki Kaisha Toshiba | Optical waveguide sensor, device, system and method for glucose measurement |
US7200311B1 (en) * | 2004-04-08 | 2007-04-03 | Stc.Unm | Surface corrugation on internal reflection infrared waveguide for enhanced detection sensitivity and selectivity |
US20120085894A1 (en) | 2008-09-16 | 2012-04-12 | Pacific Biosciences Of California, Inc. | Substrates and optical systems and methods of use thereof |
WO2015168776A1 (en) * | 2014-05-08 | 2015-11-12 | The Governing Council Of The University Of Toronto | Multimode spectroscopy apparatuses and methods |
WO2016168090A1 (en) * | 2015-04-14 | 2016-10-20 | Nueon, Inc. | Method and apparatus for determining markers of health by analysis of blood |
Also Published As
Publication number | Publication date |
---|---|
US20210215603A9 (en) | 2021-07-15 |
CN110462379B (en) | 2022-12-06 |
JP7335933B2 (en) | 2023-08-30 |
US20200240912A1 (en) | 2020-07-30 |
JP2020509385A (en) | 2020-03-26 |
JP6967078B2 (en) | 2021-11-17 |
EP3589936B1 (en) | 2024-04-24 |
US11255780B2 (en) | 2022-02-22 |
CN110462379A (en) | 2019-11-15 |
JP2022009344A (en) | 2022-01-14 |
EP3589936A1 (en) | 2020-01-08 |
WO2018157899A1 (en) | 2018-09-07 |
Similar Documents
Publication | Publication Date | Title |
---|---|---|
EP3114461B1 (en) | Fluorescence-detected assays on microfluidic chips | |
US10180390B2 (en) | Flow cytometry system and method | |
Hu et al. | Integrated microspectrometer for fluorescence based analysis in a microfluidic format | |
Testa et al. | Liquid core ARROW waveguides: a promising photonic structure for integrated optofluidic microsensors | |
Dochow et al. | Raman-on-chip device and detection fibres with fibre Bragg grating for analysis of solutions and particles | |
EP1942341A1 (en) | A device and a system for analysis of a fluid sample | |
KR20130109470A (en) | Optical biosensor | |
JP2012519871A (en) | Analyzer and method for performing detection using an analyzer | |
AU2024202739A1 (en) | Lateral detection of fluid properties | |
EP3370058A1 (en) | Planar waveguide device with nano-sized filter | |
Lei et al. | Microfluidic refractometer with integrated optical fibers and end-facet transmission gratings | |
Zhang et al. | Optofluidic refractive index sensor based on partial reflection | |
US9535214B2 (en) | Method of inputting light into optical waveguide | |
EP2718691B1 (en) | Method and apparatus for determining the concentration of an analyte contained in a liquid sample | |
Borecki et al. | Light transmission characteristics of silica capillaries | |
Kee et al. | Evanescent field absorption spectroscopy on poly (dimethylsiloxane) single-mode rib waveguide integrated with microfluidic system | |
Bryan et al. | A Multiplex “Disposable Photonics” Biosensor Platform and Its Application to Antibody Profiling in Upper Respiratory Disease | |
Chin et al. | Multiphase flow manipulation for continuous refractive index analysis of single living cell | |
Resonators et al. | Check for updates | |
Wang et al. | Single nanoparticle detection using a silicon nitride two-dimensional coupled-resonator optical-waveguide | |
Ozcelik | Optofluidic devices for biomolecule sensing and multiplexing | |
Wall et al. | Liquid-Core ARROW Platform for Organic Particle Detection |
Legal Events
Date | Code | Title | Description |
---|---|---|---|
PUAI | Public reference made under article 153(3) epc to a published international application that has entered the european phase |
Free format text: ORIGINAL CODE: 0009012 |
|
AK | Designated contracting states |
Kind code of ref document: A1 Designated state(s): AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO PL PT RO RS SE SI SK SM TR |
|
AX | Request for extension of the european patent |
Extension state: BA ME |
|
STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: THE APPLICATION HAS BEEN WITHDRAWN |
|
18W | Application withdrawn |
Effective date: 20180924 |